English

Charge transport in the Hubbard model at high temperatures: triangular versus square lattice

Strongly Correlated Electrons 2020-09-23 v2

Abstract

High-temperature bad-metal transport has been recently studied both theoretically and in experiments as one of the key signatures of strong electronic correlations. Here we use the dynamical mean field theory (DMFT) and its cluster extensions, as well as the finite-temperature Lanczos method (FTLM) to explore the influence of lattice frustration on the thermodynamic and transport properties of the Hubbard model at high temperatures. We consider the triangular and the square lattice at half-filling and at 15\% hole-doping. We find that for T1.5tT \gtrsim 1.5t the self-energy becomes practically local, while the finite-size effects become small at lattice-size 4×44 \times 4 for both lattice types and doping levels. The vertex corrections to optical conductivity, which are significant on the square lattice even at high temperatures, contribute less on the triangular lattice. We find approximately linear temperature dependence of dc resistivity in doped Mott insulator for both types of lattices.

Keywords

Cite

@article{arxiv.2006.01707,
  title  = {Charge transport in the Hubbard model at high temperatures: triangular versus square lattice},
  author = {A. Vranic and J. Vucicevic and J. Kokalj and J. Skolimowski and R. Zitko and J. Mravlje and D. Tanaskovic},
  journal= {arXiv preprint arXiv:2006.01707},
  year   = {2020}
}

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11 pages